[1] 李富有, 何余良. 铁尾矿粉在道路工程中的应用研究[J]. 中外公路, 2022, 42(1): 233-239.
LI Fuyou, HE Yuliang. Study on application of iron tailings powder in road engineering[J]. Journal of China & Foreign Highway, 2022, 42(1): 233-239.
[2] 唐谟堂, 唐朝波, 杨建广, 等. 双碳战略下中国锑产业发展趋势[J]. 有色金属(冶炼部分), 2024(11): 110-116.
TANG Motang, TANG Chaobo, YANG Jianguang, et al. Development trend of antimony industry in China under dual carbon strategy[J]. Nonferrous Metals (Extractive Metallurgy), 2024(11): 110-116.
[3] 王宇杰, 黄靓, 曾令宏, 等. 锑尾矿细集料细石混凝土基本力学性能研究[J]. 混凝土, 2025(6): 234-239.
WANG Yujie, HUANG Liang, ZENG Linghong, et al. Basic mechanical properties of antimony tailings fine aggregate concrete[J]. Concrete, 2025(6): 234-239.
[4] 王浩, 邓航, 刘数华. 锑尾矿粉基复合胶凝材料的制备及水化特性[J]. 硅酸盐通报, 2021, 40(2): 534-541.
WANG Hao, DENG Hang, LIU Shuhua. Preparation and hydration characteristics of antimony tailings powder-based composite cementitious material[J]. Bulletin of the Chinese Ceramic Society, 2021, 40(2): 534-541.
[5] 郭寅川, 魏自玉, 申爱琴,等. 砾石沥青混合料水稳定性复合改善技术研究[J]. 重庆交通大学学报(自然科学版), 2018, 37 (12): 41-48.
GUO Yinchuan, WEI Ziyu, SHEN Aiqin, et al. Water stability compound improvement technology of gravel asphalt mixture [J]. Journal of Chongqing Jiaotong University (Natural Science), 2018, 37 (12): 41-48.
[6] 王利波, 吕维前, 王雨露, 等. 钢渣集料表面形貌对沥青吸收与黏附性能的影响分析[J]. 科学技术与工程, 2023, 23(33): 14406-14419.
WANG Libo, LYU Weiqian, WANG Yulu, et al. Effects of surface morphology of steel slag aggregates on asphalt absorption and adhesion performance[J]. Science Technology and Engineering, 2023, 23(33): 14406-14419.
[7] 董仕豪, 韩森, 尹媛媛, 等. 基于表面能理论的石灰改性沥青黏附性研究[J]. 重庆交通大学学报(自然科学版), 2021, 40 (3): 89-97.
DONG Shihao, HAN Sen, YIN Yuanyuan, et al. Adhesion of lime modified asphalt based on surface energy theory [J]. Journal of Chongqing Jiaotong University (Natural Science), 2021, 40(3): 89-97.
[8] YIN Huajia, CAO Shenyang, GUO Fucheng, et al. Adhesion properties between rubber asphalt mastic and aggregate: Verification from surface free energy theory and molecular dynamics[J]. Materials, 2025, 18(13): 3115.
[9] 崔亚宁, 司春棣, 李松, 等. 基于宏-微观测试方法的铁尾矿-沥青界面黏附研究[J]. 金属矿山, 2024(6): 261-266.
CUI Yaning, SI Chundi, LI Song, et al. Study on the interface adhesion of iron tailings and asphalt based on macro-micro test method[J]. Metal Mine, 2024(6): 261-266.
[10] 邵腊庚, 王高超, 严二虎, 等. 基于原子力显微镜对沥青表面能的研究[J]. 中外公路, 2018, 38(4): 287-289.
SHAO Lageng, WANG Gaochao, YAN Erhu, et al. Research on surface energy of asphalt based on atomic force microscope[J]. Journal of China & Foreign Highway, 2018, 38(4): 287-289.
[11] DONG Fuqiang, YANG Peixing, YU Xin, et al. Diffusion behavior of rejuvenator and its influences on the interfacial properties of recycled asphalt mixtures by molecular dynamics simulations and experiments[J]. Journal of Materials in Civil Engineering, 2023, 35(11): 04023402.
[12] 张彩利, 李松, 王犇, 等. 钢渣集料-沥青界面的水稳定性[J]. 材料科学与工程学报, 2024, 42(1): 99-107.
ZHANG Caili, LI Song, WANG Ben, et al. Water stability of steel slag aggregate-asphalt interface[J]. Journal of Materials Science and Engineering, 2024, 42(1): 99-107.
[13] 宗志芳, 彭健文, 任晓健, 等. 钢渣微粉改性丁苯橡胶复合材料的分子动力学模拟及阻燃特性分析[J]. 工程科学学报, 2025, 47(7): 1485-1493.
ZONG Zhifang, PENG Jianwen, REN Xiaojian, et al. Molecular dynamics simulation and flame-retardant characterization of steel slag powder-modified styrene-butadiene rubber composites[J]. Chinese Journal of Engineering, 2025, 47(7): 1485-1493.
[14] LI D D, GREENFIELD M L. Chemical compositions of improved model asphalt systems for molecular simulations[J]. Fuel, 2014, 115: 347-356. |